细胞内空间靶向化学伴侣增加了突变体SOD1桶的天然状态稳定性。

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2023-08-09 Print Date: 2023-09-26 DOI:10.1515/hsz-2023-0198
Sara S Ribeiro, David Gnutt, Salome Azoulay-Ginsburg, Zamira Fetahaj, Ella Spurlock, Felix Lindner, Damon Kuz, Yfat Cohen-Erez, Hanna Rapaport, Adrian Israelson, Arie-Lev Gruzman, Simon Ebbinghaus
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引用次数: 1

摘要

肌萎缩侧索硬化症(ALS)是一种进行性神经系统疾病,目前尚无治愈方法。与这种致命蛋白质病相关的细胞功能障碍的核心是未折叠/错误折叠的超氧化物歧化酶1(SOD1)在各种亚细胞位置的积累。驱动SOD1聚集体形成的分子机制尚不完全清楚,但大量研究表明,异常聚集体随着突变体apoSOD1的折叠不稳定性而升级。将细胞器靶向疗法与化学伴侣的抗聚集能力相结合的最新进展成功地降低了错误折叠/聚集的SOD1的亚细胞负荷及其在低浓度(微摩尔范围)下的下游异常细胞过程。然而,这种局部聚集物减少是否与折叠稳定性的增加直接相关,还有待探索。为了填补这一空白,我们合成并测试了9种ER、线粒体和溶酶体靶向化学伴侣对针对这些细胞器的截短单体SOD1(SOD1bar)突变体折叠稳定性的影响。我们发现化合物ER-15特异性地增加了ER-SOD1bar-A4V的天然状态稳定性,而支架化合物FDA批准的4-苯基丁酸(PBA)降低了它。此外,我们的结果表明,ER15的作用机制与PBA的作用机制不同,这为这种新型化学伴侣治疗ALS开辟了新的治疗前景。
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Intracellular spatially-targeted chemical chaperones increase native state stability of mutant SOD1 barrel.

Amyotrophic lateral sclerosis (ALS) is a progressive neurological disorder with currently no cure. Central to the cellular dysfunction associated with this fatal proteinopathy is the accumulation of unfolded/misfolded superoxide dismutase 1 (SOD1) in various subcellular locations. The molecular mechanism driving the formation of SOD1 aggregates is not fully understood but numerous studies suggest that aberrant aggregation escalates with folding instability of mutant apoSOD1. Recent advances on combining organelle-targeting therapies with the anti-aggregation capacity of chemical chaperones have successfully reduce the subcellular load of misfolded/aggregated SOD1 as well as their downstream anomalous cellular processes at low concentrations (micromolar range). Nevertheless, if such local aggregate reduction directly correlates with increased folding stability remains to be explored. To fill this gap, we synthesized and tested here the effect of 9 ER-, mitochondria- and lysosome-targeted chemical chaperones on the folding stability of truncated monomeric SOD1 (SOD1bar) mutants directed to those organelles. We found that compound ER-15 specifically increased the native state stability of ER-SOD1bar-A4V, while scaffold compound FDA-approved 4-phenylbutyric acid (PBA) decreased it. Furthermore, our results suggested that ER15 mechanism of action is distinct from that of PBA, opening new therapeutic perspectives of this novel chemical chaperone on ALS treatment.

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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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